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Enhancement of Advanced Range Telemetry (ARTM) Channels via Blind Equalization

机译:通过盲均衡增强高级范围遥测(ARTM)通道

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The Joint Services Advanced Range Telemetry (ARTM) Program at Edwards Air Force Base has been evaluating FQPSK-B for possible upgrades to the existing telemetry equipment. It has been found in the wideband channel sounding experiments sponsored by ARTM that the in-flight fading channel can be modeled as a 3-ray multipath channel. Delay spread for a typical in-flight channel is in the order of 300 nanoseconds. Furthermore, the pre-flight channel is characterized by much more severe multipath, in which the delay spread is in the order of microseconds covering one or more symbols when the FQPSK-B transceiver operates at a rate of millions of symbols per second. This adverse channel condition inevitably causes tremendous distortion in the received signals due to severe inter-symbol interference (ISI) from the multipath. This paper provides an assessment of the potential ability of blind equalization to reduce the FQPSK-B system susceptibility to degradation caused by dynamic frequency selective fading in the aeronautical telemetry environment. In particular, a blind equalizer applique that can be inserted prior to the demodulator without knowledge of the received signal such as carrier frequency, symbol timing and sequence, etc, is proposed. Since it is desired that the equalizer applique operate independently of the carrier frequency and given that the modulation of interest is constant envelope (PCM-FM or FQPSKB), we have selected the constant modulus algorithm (CMA)[2] cost function for implementation. Extensive tests on both simulated and recorded FQPSK-B data transmitted over different ARTM channels have been conducted and the blind equalizer structure has shown substantial improvements, even on the difficult ARTM pre-flight channels. The CMA adapts the equalizer coefficients to minimize the deviation of the output envelope from an arbitrary constant level. This paper depicts the pre-flight and in-flight channel conditions using time and spectral domain measurement. It quantifies the benefit of the blind CMA tapped delay line equalizer. Due to the extensive signal processing requirements associated with the very high sampling rate (100 MHz) of the FQPSK-B system, hardware implementation complexity is very high. Complexity reduction issues regarding the implementation of the CMA using Field Programmable Gate Array (FPGA) will also be presented.
机译:Edwards空军基地的联合服务先进范围遥测(ARTM)计划一直在评估FQPSK-B,以便对现有的遥测设备进行升级。它已经发现在由ARTM赞助的宽带通道声音实验中,即飞行衰落通道可以被建模为3射线多径通道。典型飞行渠道的延迟传播大约300纳秒。此外,飞行前信道的特征在于,当FQPSK-B收发器以每秒数百万符号的速率运行时,延迟扩散是覆盖一个或多个符号的微秒的顺序。由于来自多径严重的符号间干扰(ISI),这种不利信道条件不可避免地导致接收信号中的巨大失真。本文提供了对盲均衡的潜在能力的评估,以降低通过在航空遥测环境中的动态频率选择性衰落引起的FQPSK-B系统易感性对降解引起的。特别地,提出了一种盲均衡,其可以在不知道诸如载波频率,符号时序和序列等的接收信号之前插入的盲均衡器贴花。由于希望均衡器贴花独立于载波频率操作,并且鉴于感兴趣的调制是恒定的包络(PCM-FM或FQPSKB),我们选择了实现的恒定模量算法(CMA)[2]成本函数。已经进行了在不同ARTM信道上传输的模拟和记录的FQPSK-B数据的广泛测试,并且盲均衡器结构也表明了显着的改进,即使在困难的ARTM飞行通道上也是如此。 CMA适应均衡器系数,以最小化输出包络从任意恒定级别的偏差。本文描绘了使用时间和光谱域测量的飞行前和在线通道条件。它量化了盲CMA触发延迟线均衡器的益处。由于与FQPSK-B系统的非常高的采样率(100 MHz)相关的广泛信号处理要求,硬件实现复杂度非常高。还将呈现关于使用现场可编程门阵列(FPGA)执行CMA的复杂性降低问题。

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